Microfluidic Sample Analysis

Microfluidic sample analysis is the examination of chemical, biological, or environmental samples within microscale channels, where tiny fluid volumes enable compact, rapid measurements with low reagent use. Devices control flow through patterned channels using pressure, capillary action, or electrokinetic forces; because flow is typically laminar, mixing and reactions depend largely on diffusion, while integrated components can separate, process, and detect analytes. In engineering, these systems support portable diagnostics, environmental monitoring, chemical assays, and automated laboratory workflows. Their small scale can reduce sample and waste requirements while improving integration, throughput, and control, although channel design and surface interactions strongly influence analytical performance.

Microfluidic Sample Analysis - Related Videos

Research

JoVE Journal - Bioengineering

A Microfluidic Chip for ICPMS Sample Introduction

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Cited by 4 •

2015

We present a discrete droplet sample introduction system for inductively coupled plasma mass spectrometry (ICPMS). It is based on a cheap and disposable microfluidic chip that generates highly monodisperse droplets in a size range of 40−60 µm at frequencies from 90 to 7,000 Hz.

Microscopic Analysis of Bacterial Growth Under Stress Using Microfluidic Chambers

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2025

Source: Cayron, J., et al. Multi-scale Analysis of Bacterial Growth Under Stress Treatments. J. Vis. Exp. (2019).This video demonstrates how to prepare and use a microfluidic plate for imaging bacterial cells under stress conditions. It outlines the process of introducing a bacterial culture and a stress-inducing antibiotic medium, followed by cell loading and microscopic setup. Time-lapse imaging in phase-contrast mode is then used to observe the development of elongated, filamentous cells...

Phage-Based Microfluidic Assay for Detecting Viable E. coli in Water Samples

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2026

Begin with a contaminated water sample likely to harbor fecal coliforms, including E. coli.Perform a serial dilution in distilled water to reduce turbidity and microbial load.Mix the desired diluted sample with the nutrient medium and load it into a microfluidic chip.Use vacuum filtration to capture bacteria on a membrane within the serpentine channel of the chip.Add nutrient medium to the upper chamber and incubate to enhance bacterial recovery.Replace the medium with a solution of E.

A Microfluidic Chip for the Versatile Chemical Analysis of Single Cells

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Cited by 10 •

2013

In this article we present a microfluidic chip for single cell analysis. It allows the quantification of intracellular proteins, enzymes, cofactors, and second messengers by means of fluorescent assays or...

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